A Purified Platelet-Derived Exosome Product for Chronic Wound Healing: A Novel Therapeutic Strategy and Next-Generation Delivery Platform
Abstract
1. Introduction
2. Exosomes in Chronic Wound Healing
2.1. Current Role and Advances of Exosomes in Chronic Wound Management
2.2. Current Challenges in the Clinical Translation of Exosome in Wound Healing
3. Clinically Available Exosomes (Purified Exosome Product)
4. Drug Delivery Systems for Purified Exosome Product (PEP)
4.1. PEP-Tisseel (Fibrin Sealant)
4.2. PEP-Collagen
4.3. PEP-HA (Including Plated Serum for Skin and Hair)
5. PEP as a Next Generation Delivery System for Chronic Wound Healing
6. Conclusions and Future Directions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Delivery Platform | Healing Model | Key Outcomes | Ref. |
|---|---|---|---|
| Aqueous solution (PEP-only) | |||
| PEP + PBS | Canine tenocytes in vitro | Effective cell uptake of PEP, ↑ proliferation/migration; ↑ SCX, COL1A1, COL3A1, TNMD, DCN, MKX; reduced dexamethasone-induced apoptosis | [59] |
| PEP + sterile water | Human epithelial adenocarcinoma cells (representing the glandular and luminal epithelium), human stromal cells and menstrual blood-derived stem cells in vitro to represent endometrium | ↑ endometrial cell proliferation and wound healing capacity in vitro, PEP absorbed by cells | [66] |
| PEP + PBS | C28/I2 cells and chondrocytes-derived from OA patients in vitro | Fast cell uptake, ↑ cellular proliferation and migration, ↓ apoptosis by reducing CASP3/7/9 and BAX. | [65] |
| PEP + PBS for intraperitoneal injection | Mice myocarditis model in vivo | ↓ inflammatory cells and proinflammatory and profibrotic markers, Immunoregulatory | [63] |
| PEP + PBS for nebulization, intravenous (IV) injection and pulmonary artery balloon catheter | Porcine lung biodistribution model in vivo | Global delivery by nebulization or IV, targeted region delivery by catheter | [69] |
| PEP + distilled water for nebulization | Mice emphysema model in vivo | Effectively delivered into injured lung, ↓ smoke-induced apoptotic cell death and emphysema, ↓ oxidative lung injury and inflammation | [60] |
| Fibrin sealant * | |||
| PEP + Tisseel | Rat sciatic nerve autograft repair model in vivo | ↑ GAP43 and S100b expression, ↑ axon diameter and maturation, ↑ motor functional recovery | [70] |
| PEP + Tisseel | Rat rotator cuff repair model in vivo | Improved tendon-bone integration, ↑ tendon Col1/col3/SCX/Tnmd/TNC/DCN/IGF expression, ↑ healing speed and strength | [68] |
| PEP + Tisseel | Rabbit ear ischemic wound in vivo | ↑ angiogenesis, mature skin function, ↑ regenerative pathways including regulating downstream mediators of TGF-β (RHOA, SMAD2, TAK1 and RAS) | [17] |
| PEP + Tisseel | Canine tendon repair model ex vivo | ↓ inflammation, gap formation, ↓ tendon healing by enhancing endogenous tenocytes and type II collagen | [67] |
| PEP + Tisseel | Rat latissimus dorsi defect model in vivo | ↑ skeletal muscle regeneration and polarization of local macrophages towards the regenerative M2 phenotype, ↓ inflammation and fatty infiltrate | [50] |
| PEP + Tisseel | Rat volumetric muscle loss model in vivo | ↑ skeletal muscle regeneration, ↑ functional recovery and more cellularity compared to control | [62] |
| PEP + Tisseel | Rat sciatic nerve allograft repair model in vivo | Taken up by Schwann cells fast, ↑ Schwann cell viability and migration for healing, ↑ motor functional recovery | [71] |
| PEP + Tisseel | Nonhealing scalp wound after chemoradiation in human | Wounds healed successfully despite resistance to conventional wound care with PEP remaining securely in place | [64] |
| PEP + Tisseel | Rat rotator cuff injury model in vivo | ↑ collagen type 1 & 3 and TGF-β, accelerated tendon-bone healing with improved biomechanical strength and recovered gait | [72] |
| Collagen * | |||
| PEP + Type-1 collagen scaffold | Rabbit Achilles tendon repair model in vivo | ↓ external adhesions macroscopically and microscopically | [73] |
| PEP + Type-1 collagen hydrogel injection | Porcine vaginal mesh exposure model in vivo | ↑ regenerated epithelial tissue over mesh, ↓ inflammation and fibrosis, ↑ capillary density, | [74,75] |
| PEP bipotentiated type-1 collagen hydrogel | Porcine stress urinary incontinence (skeletal muscle injury) model in vivo | Restored muscle function, ↑ new myofibers and M2 macrophage polarization | [50] |
| PEP + Collagen mixture through a sterile polyurethane film | Nonhealing scalp wound after chemoradiation in human | Wounds healed successfully despite resistance to conventional wound care with PEP leaking | [64] |
| Hyaluronic acid | |||
| Topical HA-based HPE serum | Twice daily facial skin application in human | Improvements in general skin health, ↓ redness, wrinkles, and melanin production | [76] |
| Topical HA-based HPE serum with methyl | Post-laser skin application in human | Cooling function, ↓ post-procedure skin trauma and recovery time | [77] |
| Topical HA-based HPE serum | Twice daily on face wrinkles in human | ↓ cellular senescence markers p16INK4a and p21CIP1/WAF1, ↓ senescence-associated telomere damage, ↓ inflammation, ↑ collagen and elastin-related genes and fibers | [78,79] |
| Topical HA-based HPE hair serum | Daily hair-scalp application in human | ↑ hair density, size, volume fullness, scalp coverage, and overall health of the hair | [80] |
| PEP + HA | Rat ischemia–reperfusion injury model in a musculocutaneous flap | ↓ serum creatinine kinase and myonecrosis, modulation of iNOS | [81] |
| Intra-articular Injection of PEP + PBS + Hylan G-F 20 * | Rat osteoarthritis model | ↓ BCL2 expression and chondrocyte apoptosis, ↑ proteins LC3 and Beclin-1 | [38] |
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Wan, R.; Nishimura, K.; Behfar, A.; Zhao, C.; Moran, S.L. A Purified Platelet-Derived Exosome Product for Chronic Wound Healing: A Novel Therapeutic Strategy and Next-Generation Delivery Platform. Pharmaceutics 2026, 18, 222. https://doi.org/10.3390/pharmaceutics18020222
Wan R, Nishimura K, Behfar A, Zhao C, Moran SL. A Purified Platelet-Derived Exosome Product for Chronic Wound Healing: A Novel Therapeutic Strategy and Next-Generation Delivery Platform. Pharmaceutics. 2026; 18(2):222. https://doi.org/10.3390/pharmaceutics18020222
Chicago/Turabian StyleWan, Rou, Ken Nishimura, Atta Behfar, Chunfeng Zhao, and Steven L. Moran. 2026. "A Purified Platelet-Derived Exosome Product for Chronic Wound Healing: A Novel Therapeutic Strategy and Next-Generation Delivery Platform" Pharmaceutics 18, no. 2: 222. https://doi.org/10.3390/pharmaceutics18020222
APA StyleWan, R., Nishimura, K., Behfar, A., Zhao, C., & Moran, S. L. (2026). A Purified Platelet-Derived Exosome Product for Chronic Wound Healing: A Novel Therapeutic Strategy and Next-Generation Delivery Platform. Pharmaceutics, 18(2), 222. https://doi.org/10.3390/pharmaceutics18020222

